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A detailed chemical kinetic model for pyrolysis of the lignin model compound chroman

机译:木质素模型化合物苯并二氢吡喃热解的详细化学动力学模型

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The pyrolysis of woody biomass, including the lignin component, is emerging as a potential technology for the production of renewable fuels and commodity chemicals. Here we describe the construction and implementation of an elementary chemical kinetic model for pyrolysis of the lignin model compound chroman and its reaction intermediate ortho -quinone methide ( o -QM). The model is developed using both experimental and theoretical data, and represents a hybrid approach to kinetic modeling that has the potential to provide molecular level insight into reaction pathways and intermediates while accurately describing reaction rates and product formation. The kinetic model developed here can replicate all known aspects of chroman pyrolysis, and provides new information on elementary reaction steps. Chroman pyrolysis is found to proceed via an initial retro-Diels–Alder reaction to form o -QM + ethene (C2H4), followed by dissociation of o -QM to the C6H6 isomers benzene and fulvene (+ CO). At temperatures of around 1000–1200 K and above fulvene rapidly isomerizes to benzene, where an activation energy of around 270 kJ mol-1 is required to reproduce experimental observations. A new G3SX level energy surface for the isomerization of fulvene to benzene supports this result. Our modeling also suggests that thermal decomposition of fulvene may be important at around 950 K and above. This study demonstrates that theoretical protocols can provide a significant contribution to the development of kinetic models for biomass pyrolysis by elucidating reaction mechanisms, intermediates, and products, and also by supplying realistic rate coefficients and thermochemical properties.
机译:包括木质素成分在内的木质生物质的热解正在成为生产可再生燃料和日用化学品的潜在技术。在这里,我们描述了木质素模型化合物苯并二氢吡喃及其反应中间体邻甲基苯醌甲基化物(o -QM)热解基本化学动力学模型的构建和实现。该模型是使用实验数据和理论数据开发的,代表了动力学建模的一种混合方法,该方法有可能提供对反应途径和中间体的分子水平见解,同时准确描述反应速率和产物的形成。此处开发的动力学模型可以复制苯并二氢吡喃热解的所有已知方面,并提供有关基本反应步骤的新信息。发现色子热解通过最初的逆狄尔斯-阿尔德反应进行,形成邻-QM +乙烯(C 2 H 4 ),然后解离邻-QM C 6 H 6 异构体苯和富烯(+ CO)。在大约1000–1200 K和更高的温度下,富勒烯迅速异构化为苯,为了重现实验结果,需要约270 kJ mol -1 的活化能。用于富马烯异构化为苯的新的G3SX能级表面支持了这一结果。我们的模型还表明,在950 K或更高温度下,富烯的热分解可能很重要。这项研究表明,通过阐明反应机理,中间体和产物,以及提供现实的速率系数和热化学性质,理论规程可以为生物质热解动力学模型的发展做出重大贡献。

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